Neonicotinoids Activity Against Cowpea Aphids by Computational Estimation

被引:0
|
作者
Crisan, L. [1 ]
Borota, A. [1 ]
Bora, A. [1 ]
Funar-Timofei, S. [1 ]
机构
[1] Romanian Acad, Coriolan Dragulescu Inst Chem, Bul Mihai Viteazu 24, Timisoara 300223, Romania
来源
关键词
Neonicotinoids; Cowpea aphids; MLR; Pharmacophore; QSARINS; CONFORMER GENERATION; QSAR MODELS; VALIDATION; SET; SELECTIVITY; DISCOVERY; DESIGN;
D O I
10.22052/ijmc.2019.176522.1433
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, the insecticidal activity against Cowpea aphids (Aphis craccivora) of a series of 23 phenylazo, pyrrole-, dihydropyrrole-fused and chain-opening nitromethyleneneonicotinoids was evaluatedby using the multiple linear regression (MLR) and pharmacophore modelling. Conformer insecticide ensembles were modeled using the MMFF94s force field. Minimum energy conformers were employed to calculate structural parameters, which were related to the experimental pLC(50) values. Several statistical criteria of goodness of fit and predictivity were checked to validate the models. Robust and predictable MLR models were obtained. Further, the Phase module from Schrodinger suite was engaged in the generation of the ligand-based pharmacophore models. The atom-based 3D-QSAR module from the aforementioned software was used for the validation of a best four-point pharmacophore model. The obtained significant statistical parameters attested the pharmacophore model validity. The MLR and pharmacophore models are useful for the prediction of new insecticides with activity against Cowpea aphids. (C) 2019 University of Kashan Press. All rights reserved
引用
收藏
页码:21 / 44
页数:24
相关论文
共 50 条
  • [31] Neonicotinoid insecticide design: molecular docking, multiple chemometric approaches, and toxicity relationship with Cowpea aphids
    Alina Bora
    Takahiro Suzuki
    Simona Funar-Timofei
    Environmental Science and Pollution Research, 2019, 26 : 14547 - 14561
  • [32] Computational Prediction of Subjective Sense of Force Based on Muscle Activity Estimation
    Kishishita, Yusuke
    Tsuji, Toshio
    Kurita, Yuichi
    ADVANCES IN PHYSICAL ERGONOMICS AND HUMAN FACTORS, 2016, 489 : 687 - 694
  • [33] Identification of a cowpea γ-thionin with bactericidal activity
    Franco, Octavio L.
    Murad, Andre M.
    Leite, Jose R.
    Mendes, Paulo A. M.
    Prates, Maura V.
    Bloch, Carlos, Jr.
    FEBS JOURNAL, 2006, 273 (15) : 3489 - 3497
  • [34] Phloem: At the center of action in plant defense against aphids
    Twayana, Moon
    Girija, Anil M.
    Mohan, Vijee
    Shah, Jyoti
    JOURNAL OF PLANT PHYSIOLOGY, 2022, 273
  • [35] Gall volatiles defend aphids against a browsing mammal
    Rostas, Michael
    Maag, Daniel
    Ikegami, Makihiko
    Inbar, Moshe
    BMC EVOLUTIONARY BIOLOGY, 2013, 13
  • [36] Gall volatiles defend aphids against a browsing mammal
    Michael Rostás
    Daniel Maag
    Makihiko Ikegami
    Moshe Inbar
    BMC Evolutionary Biology, 13
  • [37] Tuned protection of aphids by ants against a predatory hoverfly
    Detrain, Claire
    Fichaux, Melanie
    Verheggen, Francois
    ECOLOGICAL ENTOMOLOGY, 2017, 42 (03) : 235 - 244
  • [38] RNAi-mediated plant protection against aphids
    Yu, Xiu-Dao
    Liu, Zong-Cai
    Huang, Si-Liang
    Chen, Zhi-Qin
    Sun, Yong-Wei
    Duan, Peng-Fei
    Ma, You-Zhi
    Xia, Lan-Qin
    PEST MANAGEMENT SCIENCE, 2016, 72 (06) : 1090 - 1098
  • [39] Are behavioural changes in parasitised aphids a protection against hyperparasitism?
    Muller, CB
    Volkl, W
    Godfray, HCJ
    EUROPEAN JOURNAL OF ENTOMOLOGY, 1997, 94 (02) : 221 - 234
  • [40] AUTORADIOGRAPHIC STUDY OF ACTIVITY OF NURSE CELLS IN APHIDS
    ORLANDO, E
    CARYOLOGIA, 1967, 20 (03) : 217 - &